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Development of Classification Models for Assessment of Endotracheal Intubation Training by a Cyber-Physical System

机译:通过网络物理系统评估子弹插管培训分类模型的开发

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Endotracheal intubation (ETI) is one of the most staple skills in prehospital medicine that is performed to prevent suffocation of an unconscious person. To evaluate ETI skills of medical practitioners, an effective and reliable assessment system is required; however, the current assessment method relies on subjective evaluation by supervisors during training sessions that may be inaccurate and biased. To provide objective and immediate feedback to trainees, this paper proposes a cyber physical system (CPS)-based ETI assessment system. The CPS is composed of wearable gloves with embedded sensors to capture hand motion data and software to discriminate between two groups: experienced and novice. To this end, we collected hand motion data from the two groups and extracted 18 features. Furthermore, we identified reduced sets of 8 and 10 based on their statistical significance. To discriminate the two groups, artificial neural network-based classification models were developed with the three feature sets. Experimental results show that the classifiers with 18, 8, and 10 features achieved an accuracy of 90.94%, 87.87% and 89.60%, respectively. This work corroborates that wearable gloves with embedded motion sensors can be effective in assisting self-training of ETI on a CPS.
机译:气管内插管(ETI)是以防止无意识人群窒息的预孢子药中最主题的技能之一。为了评估医生的ETI技能,需要有效且可靠的评估系统;但是,目前的评估方法依赖于监督员在可能不准确和偏见的培训课程期间的主观评估。提供对学员的客观和即时反馈,本文提出了一种网络物理系统(CPS)的ETI评估系统。 CPS由带有嵌入式传感器的可穿戴手套组成,用于捕获手动运动数据和软件,以区分两组:经验丰富和新手。为此,我们从两组收集了手动运动数据并提取了18个功能。此外,我们根据其统计学意义识别出减少的8和10。为了区分两组,使用三个特征集开发了基于人工神经网络的分类模型。实验结果表明,具有18,8和10个特征的分类器分别达到90.94%,87.87%和89.60%的精度。这项工作证实了具有嵌入式运动传感器的可穿戴手套可以有效地帮助在CP上的ETI自我训练。

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